Crops ›› 2022, Vol. 38 ›› Issue (3): 20-26.doi: 10.16035/j.issn.1001-7283.2022.03.003

Previous Articles     Next Articles

Research Progress on the Effects of Slow/Controlled Release Fertilizers on Rice Yield and Quality

Gao Jie(), Li Siyu, Cheng Dayu, Zhang Xingyu, Gu Xi, Liu Lijun()   

  1. Jiangsu Key Laboratory of Crop Genetics and Physiology/Jiangsu Co-Innovation Center for Modern Production Technology of Grain Crops, Yangzhou University, Yangzhou 225009, Jiangsu, China
  • Received:2021-04-23 Revised:2022-02-15 Online:2022-06-15 Published:2022-06-20
  • Contact: Liu Lijun E-mail:1516650443@qq.com;ljliu@yzu.edu.cn

Abstract:

The application of slow/controlled release fertilizer (SCRF) is an effective measure to solve the problem of the high nitrogen application rate and low nitrogen use efficiency in rice production in China. This paper summarized the effects of application rates and methods of SCRF on grain yield and rice quality and their mechanisms. Appropriate nitrogen reduction of SCRF could still ensure rice yield and effectively improve nitrogen use efficiency and taste quality of rice. Improving fertilization methods, such as lateral deep fertilization or the combined application of conventional nitrogen fertilizer, could further increase the rice yield. In the future, further studies should focus on the effects and internal mechanisms of SCRF on grain quality, the relationship between the release curve of SCRF and the growth of rice roots and the effects of combined application of slow-release fertilizer and controlled-release fertilizer on grain yield and rice quality to further increase yield and utility.

Key words: Rice, Slow/controlled release fertilizers, Lateral deep fertilization, Yield, Rice quality

Table 1

Types and characteristics of common slow/controlled release fertilizer"

肥料类型
Fertilizer type
代表性肥料
Representative fertilizer
作用机理
Mechanism
优缺点
Advantage and disadvantage
物理型
Physical type
物理包膜型
有机聚合物包膜
无机材料包膜
物理(膜阻隔)
缓控释效果主要受包膜材料限制
物理基质型
营养吸附型
扩散控制型
物理(吸附、限制溶出)
材料多样,工艺制作简单,但养分含量较低
化学型
Chemical type
化学结合型
有机氮化合物:脲甲醛、
脲乙醛、异丁叉二脲、
化学(化学键分解、断裂)
缓释效果较好,但由于其养分释放速度易受外界环境因素影响,难以控制,控释效果较差

无机氮化合物:金属磷
铵盐、部分酸化磷酸盐
化学抑制型 脲酶抑制剂 化学、生物(微生物活性、酶活性) 应用广泛,但易受土壤等环境因素影响
硝化抑制剂
[1] 朱德峰, 张玉屏, 陈惠哲, 等. 中国水稻高产栽培技术创新与实践. 中国农业科学, 2015, 48(17):3404-3414.
[2] Chen Q, He A B, Wang W Q, et al. Comparisons of regeneration rate and yields performance between inbred and hybrid rice cultivars in a direct seeding rice-ratoon rice system in central China. Field Crops Research, 2018, 223:164-170.
doi: 10.1016/j.fcr.2018.04.010
[3] 向晶, 钟甫宁. 人口结构变动对未来粮食需求的影响: 2010-2050. 中国人口·资源与环境, 2013, 23(6):117-121.
[4] 辛良杰, 李秀彬, 谈明洪. 2000-2010年我国农业化肥施用的时空演变格局. 中国农业大学学报, 2013, 18(5):21-27.
[5] 张艳, 于汶加, 陈其慎, 等. 化肥消费规律及中国化肥矿产需求趋势预测. 资源科学, 2015, 37(5):977-987.
[6] 张福锁, 王激清, 张卫峰, 等. 中国主要粮食作物肥料利用率现状与提高途径. 土壤学报, 2008, 45(5):915-924.
[7] 朱利群, 王珏, 王春杰, 等. 有机肥和化肥配施技术农户采纳意愿影响因素分析——基于苏、浙、皖三省农户调查. 长江流域资源与环境, 2018, 27(3):671-679.
[8] Olad A, Zebhi H, Salari D, et al. Slow-release NPK fertilizer encapsulated by carboxymethyl cellulose-based nanocomposite with the function of water retention in soil. Materials Science and Engineering, 2018, 90:333-340.
doi: 10.1016/0025-5416(87)90229-1
[9] 张迪, 吕思琪, 徐文越, 等. 侧深施控释肥下寒地粳稻产量形成及氮素利用特性. 中国土壤与肥料, 2021(2):213-220.
[10] Wei H Y, Chen Z F, Xing Z P, et al. Effects of slow or controlled release fertilizer types and fertilization modes on yield and quality of rice. Journal of Integrative Agriculture, 2018, 17(10):2222-2234.
doi: 10.1016/S2095-3119(18)62052-0
[11] Patil M D, Das B S, Barak E, et al. Performance of polymer-coated urea in transplanted rice:effect of mixing ratio and water input on nitrogen use efficiency. Paddy and Water Environment, 2010, 8(2):189-198.
doi: 10.1007/s10333-010-0197-3
[12] 彭玉, 马均, 蒋明金, 等. 缓/控释肥对杂交水稻根系形态、生理特性和产量的影响. 植物营养与肥料学报, 2013, 19(5):1048-1057.
[13] 刘宁, 孙振涛, 韩晓日, 等. 缓/控释肥料的研究进展及存在问题. 土壤通报, 2010, 41(4):1005-1009.
[14] 韩晓日. 新型缓/控释肥料研究现状与展望. 沈阳农业大学学报, 2006(1):3-8.
[15] 程爽, 车阳, 田晋钰, 等. 水稻缓控释氮肥应用研究现状与展望. 扬州大学学报(农业与生命科学版), 2020, 41(2):1-8.
[16] 龙秀文, 林杉, 游捷, 等. 施氮量和CAU31系列控释肥对矮牵牛生长和观赏品质的影响. 河北农业大学学报, 2004(5):22-26.
[17] Grzmil L. Controlled release fertilizers. Polish Journal of Chemical Technology, 2007, 9(4):83-84.
[18] Maria T, Anna J. Use of polysulfone in controlled-release NPK fertilizer formulations. Journal of Agricultural and Food Chemistry, 2002, 50(16):4634-4639.
doi: 10.1021/jf0116808
[19] 张敬昇, 李冰, 王昌全, 等. 控释氮肥与尿素掺混比例对作物中后期土壤供氮能力和稻麦产量的影响. 植物营养与肥料学报, 2017, 23(1):110-118.
[20] Wang B, Li Y E, Wan Y F, et al. Modifying nitrogen fertilizer practices can reduce greenhouse gas emissions from a Chinese double rice cropping system. Agriculture,Ecosystems and Environment, 2016, 215:100-109.
doi: 10.1016/j.agee.2015.09.008
[21] 胡雪荻, 耿元波, 梁涛. 缓控释肥在茶园中应用的研究进展. 中国土壤与肥料, 2018(1):1-8.
[22] 谷佳林, 曹兵, 李亚星, 等. 缓控释氮素肥料的研究现状与展望. 土壤通报, 2008(2):431-434.
[23] 程金秋. 缓控释肥类型及运筹对早熟晚粳水稻产量及稻米品质的影响. 扬州:扬州大学, 2018.
[24] 吴欢欢, 李若楠, 张彦才, 等. 我国缓/控释肥料发展现状、趋势及对策. 华北农学报, 2009, 24(S2):263-267.
[25] Ma L, Yang L, Shen M X, et al. Study on crop yield stability in a typical region of rice-wheat rotation based on long-term fertilization experiment. Transactions of the Chinese Society of Agricultural Engineering, 2011, 27(4):117-124.
[26] 黄思怡, 周旋, 田昌, 等. 控释尿素减施对双季稻光合特性和经济效益的影响. 土壤, 2020, 52(4):736-742.
[27] 许仙菊, 马洪波, 宁运旺, 等. 缓释氮肥运筹对稻麦轮作周年作物产量和氮肥利用率的影响. 植物营养与肥料学报, 2016, 22(2):307-316.
[28] 陈建生, 徐培智, 唐拴虎, 等. 一次基施水稻控释肥技术的养分利用率及增产效果. 应用生态学报, 2005(10):1868-1871.
[29] 曾建华, 潘孝忠, 吉清妹, 等. 控释掺混肥不同施用量对水稻产量的影响. 广东农业科学, 2014, 41(24):72-75.
[30] 刘红江, 郭智, 郑建初, 等. 不同类型缓控释肥对水稻产量形成和稻田氮素流失的影响. 江苏农业学报, 2018, 34(4):783-789.
[31] 丁济娜, 李东坡, 武志杰, 等. 土壤理化性质与生物活性对持续施用缓/控释尿素肥料的响应. 生态学杂志, 2014, 33(7):1769-1778.
[32] 何荣川. 缓控释肥对水稻氮素吸收利用、产量和品质形成的影响. 南京:南京农业大学, 2018.
[33] Hou P F, Xue L X, Zhou Y L, et al. Yield and N utilization of transplanted and direct-seeded rice with controlled or slow-release fertilizer. Agronomy Journal, 2019, 111(3):1-10.
doi: 10.2134/agronj2018.10.0657
[34] 刘海东, 唐湘如, 赵烈, 等. 不同施肥深度对直播水稻氮素积累与转移的影响. 华北农学报, 2016, 31(5):216-221.
[35] 金树权, 陈若霞, 汪峰, 等. 不同氮肥运筹模式对稻田田面水氮浓度和水稻产量的影响. 水土保持学报, 2020, 34(1):242-248.
[36] 黄旭, 唐拴虎, 徐培智, 等. 一次性施用控释肥对超级稻生长及产量的影响. 广东农业科学, 2006(9):16-19.
[37] 石磊, 陆利民. 不同缓释肥对水稻生长发育和产量的影响. 安徽农业科学, 2015, 43(31):131-132,139.
[38] 金丹丹, 宫亮, 李波, 等. 2种缓/控释肥对滨海盐碱地区水稻产量及氮代谢的影响. 水土保持学报, 2020, 34(4):334-339.
[39] 符建荣. 控释氮肥对水稻的增产效应及提高肥料利用率的研究. 植物营养与肥料学报, 2001(2):145-152.
[40] 李敏, 郭熙盛, 叶舒娅, 等. 硫膜和树脂膜控释尿素对水稻产量、光合特性及氮肥利用率的影响. 植物营养与肥料学报, 2013, 19(4):808-815.
[41] 赵蒙, 曾科, 姚元林, 等. 聚脲甲醛缓释肥对太湖稻麦轮作体系氨挥发及产量的影响. 植物营养与肥料学报, 2019, 25(1):55-63.
[42] 邢晓鸣, 李小春, 丁艳锋, 等. 缓控释肥组配对机插常规粳稻群体物质生产和产量的影响. 中国农业科学, 2015, 48(24):4892-4902.
[43] 魏海燕, 李宏亮, 程金秋, 等. 缓释肥类型与运筹对不同穗型水稻产量的影响. 作物学报, 2017, 43(5):730-740.
[44] Li G H, Lin J J, Xue L H, et al. Fate of basal N under split fertilization in rice with 15N isotope tracer. Pedosphere, 2018, 28(1):135-143.
doi: 10.1016/S1002-0160(17)60407-7
[45] 彭玉, 孙永健, 蒋明金, 等. 不同水分条件下缓/控释氮肥对水稻干物质量和氮素吸收、运转及分配的影响. 作物学报, 2014, 40(5):859-870.
[46] 罗兰芳, 郑圣先, 廖育林, 等. 控释氮肥对杂交水稻糙米蛋白质品质和氮代谢关键酶活性的影响. 中国水稻科学, 2007(4):403-410.
[47] 张洪程, 马群, 杨雄, 等. 水稻品种氮肥群体最高生产力及其增长规律. 作物学报, 2012, 38(1):86-98.
[48] 唐拴虎, 徐培智, 张发宝, 等. 一次性全层施用控释肥对水稻根系形态发育及抗倒伏能力的影响. 植物营养与肥料学报, 2006(1):63-69.
[49] 王斌, 万运帆, 郭晨, 等. 控释尿素、稳定性尿素和配施菌剂尿素提高双季稻产量和氮素利用率的效应比较. 植物营养与肥料学报, 2015, 21(5):1104-1112.
[50] 张爱平, 刘汝亮, 杨世琦, 等. 基于缓释肥的侧条施肥技术对水稻产量和氮素流失的影响. 农业环境科学学报, 2012, 31(3):555-562.
[51] Li W, Cheng X, Xia P, et al. Application of controlled-release urea enhances grain yield and nitrogen use efficiency in irrigated rice in the yangtze river basin,China. Frontiers in Plant Science, 2018, 9:999.
doi: 10.3389/fpls.2018.00999
[52] Yang Y C, Zhang M, Li Y C, et al. Controlled release urea improved nitrogen use efficiency,activities of leaf enzymes,and rice yield. Soil Science Society of America Journal, 2012, 76(6):2307-2317.
doi: 10.2136/sssaj2012.0173
[53] 卫丽, 马超, 黄晓书, 等. 控释肥对夏玉米碳、氮代谢的影响. 植物营养与肥料学报, 2010, 16(3):773-776.
[54] 朱安, 高捷, 黄健, 等. 水稻根系形态生理及其与稻米品质关系的研究进展. 作物杂志, 2020(2):1-8.
[55] 邵彩虹, 钱银飞, 唐秀英, 等. 养分胁迫对水稻籽粒灌浆充实影响的蛋白质组学研究. 中国水稻科学, 2012, 26(3):267-274.
[56] 殷春渊, 王书玉, 刘贺梅, 等. 氮肥施用量对超级粳稻新稻18号强、弱势籽粒灌浆和稻米品质的影响. 中国水稻科学, 2013, 27(5):503-510.
[57] 田祖庆, 周精华, 刘慈明, 等. 影响稻米品质的因素分析及高档优质一季晚稻生产关键技术. 杂交水稻, 2020, 35(3):53-55.
[58] 李武, 邓飞, 胡慧, 等. 缓控释氮肥对机插杂交籼稻稻米品质的影响. 核农学报, 2018, 32(4):779-787.
[59] 周立军, 江玲, 翟虎渠, 等. 水稻垩白的研究现状与改良策略. 遗传, 2009, 31(6):563-572.
[60] 蒋伟勤, 马中涛, 胡群, 等. 缓控释氮肥对水稻生长发育及氮素利用的影响. 江苏农业学报, 2020, 36(3):777-784.
[61] 居静, 吴海波, 陈永林, 等. 日本产包膜控释氮肥对稻米品质的影响. 江苏农业科学, 2015, 43(2):67-70.
[62] 成臣, 曾勇军, 王祺, 等. 施氮量对晚粳稻甬优1538产量、品质及氮素吸收利用的影响. 水土保持学报, 2018, 32(5):222-228.
[63] 王忠, 顾蕴洁, 陈刚, 等. 稻米的品质和影响因素. 分子植物育种, 2003(2):231-241.
[64] 桂云波, 张瑛, 吴敬德. 肥料种类对优质稻产量、品质及稻米食用安全性的影响. 安徽农业科学, 2014, 42(23):7860-7862.
[65] 莫钊文, 潘圣刚, 王在满, 等. 机械同步深施肥对水稻品质和养分吸收利用的影响. 华中农业大学学报, 2013, 32(5):34-39.
[66] Bautista E U, Suministrado D C, Koike M. Mechanical deep placement of fertilizer in puddled soils:evaluation of nitrogen losses and yield of transplanted and direct-seeded rice. Journal of the Japanese Society of Agricultural Machinery, 2000, 62:146-157.
[67] Calabio J C, Garcia F V, De D S K. Alternative strategies for increasing nitrogen fertilizer efficiency in wetland rice soils. Philippine Journal of Crop Science, 1981, 5(4):144-149.
[68] 石吕, 张新月, 孙惠艳, 等. 不同类型水稻品种稻米蛋白质含量与蒸煮食味品质的关系及后期氮肥的效应. 中国水稻科学, 2019, 33(6):541-552.
[69] 朱大伟, 李敏, 郭保卫, 等. 氮肥水平对优质粳稻蒸煮食味品质与质构特性的影响. 贵州农业科学, 2018, 46(3):62-66.
[70] 武云霞, 刘芳艳, 孙永健, 等. 水氮互作对直播稻产量及稻米品质的影响. 四川农业大学学报, 2019, 37(5):604-610,622.
[71] Wopereis P M, Watanabe H, Moreira J, et al. Effect of late nitrogen application on rice yield,grain quality and profitability in the Senegal River valley. European Journal of Agronomy, 2002, 17(3):191-198.
doi: 10.1016/S1161-0301(02)00009-6
[72] 尤小涛, 荆奇, 姜东, 等. 节水灌溉条件下氮肥对粳稻稻米产量和品质及氮素利用的影响. 中国水稻科学, 2006(2):199-204.
[73] Lee D, Park K, Park C, et al. Effects of application of controlled release fertilizer blended with different nitrogen releasing latex coated ureas on rice growth and grain quality. Korean Journal of Crop Science, 2007, 52(3):311-319.
[74] 董晓亮, 侯红燕, 张金凤, 等. 缓释肥和无机肥配施对滨海盐碱地水稻生长和食味品质的影响. 中国农学通报, 2021, 37(4):1-7.
[75] 张其芳, 刘奎刚, 苏达, 等. 氮素和水分处理对稻米植酸含量和蛋白组分的影响. 植物营养与肥料学报, 2012, 18(3):542-550.
[76] 王康君, 葛立立, 范苗苗, 等. 稻米蛋白质含量及其影响因素的研究进展. 作物杂志, 2011(6):1-6.
[77] Khan AZ, Ali B, Afzal M, et al. Effects of sulfur and urease coated controlled release urea on dry matter yield,N uptake and grain quality of rice. Journal of Animal and Plant Sciences, 2015, 47(3):35-42.
[78] 苏胜齐, 王正银, 董燕, 等. 缓释复合肥条件下覆盖旱作对水稻氮素利用和稻米品质的影响. 农业工程学报, 2005(3):47-50.
[79] 郑磊, 陈宝成, 范玲超, 等. 控释掺混专用肥对水稻生长的影响. 中国农学通报, 2013, 29(30):23-28.
[80] 聂军, 肖剑, 戴平安, 等. 控释氮肥对水稻氮代谢关键酶活性及糙米蛋白质含量的影响. 湖南农业大学学报(自然科学版), 2003(4):318-321.
[81] 丁园, 宗良纲, 徐晓炎, 等. 镉污染对水稻不同生育期生长和品质的影响. 生态环境学报, 2009, 18(1):183-186.
[82] 卢维宏, 张乃明, 苏友波, 等. 联合施肥对复合污染农田水稻As、Cd吸收的影响. 农业环境科学学报, 2020, 39(10):2217-2226.
[1] Xu Chuangye, Zhang Jianjun, Zhou Gang, Zhang Kaipeng, Zhu Xiaohui, Wang Jiaxi, Dang Yi, Zhao Gang, Wang Lei, Li Shangzhong, Fan Tinglu. Screening and Evaluation of New Maize Varieties with Compact Planting, High Yield and Suitable for Mechanical Grain Harvest in Loess Plateau in Eastern Gansu Province [J]. Crops, 2022, 38(5): 104-110.
[2] Feng Changhui, Jiao Chunhai, Zhang Youchang, Bie Shu, Qin Hongde, Wang Qiongshan, Zhang Jiaohai, Wang Xiaogang, Xia Songbo, Lan Jiayang, Chen Quanqiu. Genetic Analysis for Yield and Fiber Quality Traits in Upland Cotton Based on Partial NCII Mating Design [J]. Crops, 2022, 38(5): 13-21.
[3] Chang Haigang, Li Guang, Yuan Jianyu, Xie Mingjun, Qi Xiaoping. Effects of Different Fertilization Methods on Soil Nutrients and Yield of Spring Wheat in the Loess Hilly Region of Central Gansu Province [J]. Crops, 2022, 38(5): 160-166.
[4] Zhang Xi, Xie Jin, Huang Hao, Gao Renji, Lu Chao, Zhou Yilin, Liang Zengfa, Wang Wei. Effects of Nitrogen Fertilizer Operation and Plant Spacing on Yield and Quality of Yunyan 116 in Pu’er Tobacco Area [J]. Crops, 2022, 38(5): 188-194.
[5] Shi Bixian, Tao Jianfei, Gao Yan, Xie Huihong, Abulimiti·Aierken , Cheng Pingshan, Maitituersun·Sadike , Sha Hong. Effects of Different Planting Densities on the Morphological Traits and Yields of Three Confectionery Sunflower Varieties [J]. Crops, 2022, 38(5): 195-200.
[6] Xu Min, Jin Lulu, Li Ruichun, Sun Liyuan, Wang Zisheng. Study on Cotton Chemical Topping in Liaohe Cotton Area [J]. Crops, 2022, 38(5): 201-207.
[7] Tao Yueyue, Sun Hua, Wang Haihou, Lu Changying, Shen Mingxing. Effects of Harvest Date and Drying Days on the Yield, Crude Protein Content and Moisture of Forage Rapeseed [J]. Crops, 2022, 38(5): 215-220.
[8] Zhang Chonghua, Duan Licheng, Wang Shangming, Zhang Qingxia, Wang Chengzi, Wu Fengyu, Yang Lin. Effects of Sowing Date on Late-Rice Yield and Utilization of Heat-Light Resources in Jiangxi Province [J]. Crops, 2022, 38(5): 229-234.
[9] Pan Junfeng, Liu Yanzhuo, Liang Kaiming, Huang Nongrong, Peng Bilin, Fu Youqiang, Hu Xiangyu, Zhong Xuhua, Li Meijuan, Hu Rui. Effects of Long- and Short-Term Reduction of Phosphorus Input on Yield and Phosphorus Utilization of Double Cropping Rice in South China [J]. Crops, 2022, 38(5): 241-248.
[10] Li Rui, Dong Liqiang, Shang Wenqi, Yu Guangxing, Dai Guijin, Wang Zheng, Li Yuedong. Effects of Water Spraying Interval at Seedling Stage on Growth and Yield of Rice [J]. Crops, 2022, 38(5): 249-254.
[11] Dong Linlin, Shen Mingxing, Shi Linlin, Shen Yuan, Wang Haihou, Lu Changying. The Effects of Biochar Combined with Earthworm Cast Application on Rice Yield and Nutrient Uptake [J]. Crops, 2022, 38(5): 69-77.
[12] Zhou Yujiao, Zhang Weiyang, Yang Jianchang. Research Advances on High Temperature Induced-Impairment in Spikelet-Opening and Pistil-Fertilization of Photo-Thermo-Sensitive Genic Male Sterile Rice Lines [J]. Crops, 2022, 38(4): 1-8.
[13] Chen Shiyong, Wang Rui, Chen Zhiqing, Zhang Haipeng, Wang Juanjuan, Shan Yuhua, Yang Yanju. Effects of Nano-Zinc and Ion-Zinc on Rice Yield Formation and Grain Zinc Content [J]. Crops, 2022, 38(4): 107-114.
[14] Tang Jianpeng, Chen Jingdu, Wen Kai, Zhang Mingwei, Xie Chenglin, Lu Peiling, Min Sigui, Wang Qiluan, Cheng Jiemin. Study on Material Production and Yield Characteristics of Japonica Rice with Good Eating Quality in Rice-Crayfish Farming System [J]. Crops, 2022, 38(4): 115-123.
[15] Sun Qingsheng, Yuan Cheng, Zhang Yuxian. Effects of Reducing Nitrogen Fertilizer and Inoculating Rhizobium on Photosynthetic Characteristics and Yield of Black Soybean [J]. Crops, 2022, 38(4): 132-137.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!